Title :
A New Approach to Random Access: Reliable Communication and Reliable Collision Detection
Author :
Luo, Jie ; Ephremides, Anthony
Author_Institution :
Electr. & Comput. Eng. Dept., Colorado State Univ., Fort Collins, CO, USA
Abstract :
This paper applies information theoretic analysis to packet-based random multiple access communication systems. A new channel coding approach is proposed for coding within each data packet with built-in support for bursty traffic properties, such as message underflow, and for random access properties, such as packet collision detection. The coding approach does not require joint communication rate determination either among the transmitters or between the transmitters and the receiver. Its performance limitation is characterized by an achievable region defined in terms of communication rates, such that reliable packet recovery is supported for all rates inside the region and reliable collision detection is supported for all rates outside the region. For random access communication over a discrete-time memoryless channel, it is shown that the achievable rate region of the introduced coding approach equals the Shannon information rate region without a convex hull operation. Further connections between the achievable rate region and the Shannon information rate region are developed and explained.
Keywords :
channel capacity; channel coding; information theory; multi-access systems; receivers; telecommunication channels; telecommunication congestion control; telecommunication traffic; transmitters; Shannon information rate; bursty traffic properties; channel coding approach; coding approach; convex hull operation; data packet; discrete-time memoryless channel; information theoretic analysis; joint communication rate determination; packet-based random multiple access communication system; random access properties; reliable collision detection; reliable communication; reliable packet recovery; Channel coding; Indexes; Receivers; Reliability; Transmitters; Vectors; Bursty traffic; Shannon capacity; channel coding; multiple access communication; random access;
Journal_Title :
Information Theory, IEEE Transactions on
DOI :
10.1109/TIT.2011.2173705